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An adaptive‐passive retuning device for a pendulum tuned mass damper considering mass uncertainty and optimum frequency

机译:考虑质量不确定性和最佳频率的摆调谐质量阻尼器的自适应无源调谐装置

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摘要

A tuned mass damper (TMD) is one of the most used structural control devices. However, a traditional TMD has the disadvantage of high sensitivity to frequency deviation and difficulty adjusting the frequency. The optimal frequency for a TMD is dependent on the structural dominant frequency and the TMD mass ratio. Nevertheless, the actual structural modal mass is difficult to obtain, and the presence of a TMD may interfere with identification of the natural structural frequency. Aiming to control wind-induced vibration, an adaptive-passive retuning device is developed for a pendulum TMD called an adaptive-passive variable pendulum TMD (APVP-TMD). When it is time to adjust the pendulum, the mass will first be locked, and the structural frequency in this case is identified through wavelet transformation by an acceleration sensor and a microcontroller. It is found that this is actually the optimal frequency for the TMD. Then, a stepper motor will adjust the length of the pendulum under the guidance of the microcontroller. The effectiveness of APVP-TMD is verified through both discrete and continuous models. For the discrete model, a single-degree-of-freedom primary structure coupled with an APVP-TMD is presented as an experiment with analysis comparison, and a five-degree-of-freedom primary structure coupled with an APVP-TMD is proposed as a numerical simulation. For the continuous model, a wind-sensitive concrete chimney is controlled by an APVP-TMD as a case study. The results all show that the APVP-TMD can identify the optimal frequency and retune itself effectively, and the retuned TMD has better vibration control than the mistuned one.
机译:调谐质量阻尼器(TMD)是最常用的结构控制设备之一。然而,传统的TMD具有对频率偏差的高灵敏度和难以调节频率的缺点。 TMD的最佳频率取决于结构主导频率和TMD质量比。然而,很难获得实际的结构模态质量,并且TMD的存在可能会干扰自然结构频率的识别。为了控制风引起的振动,为钟摆TMD开发了一种自适应无源调谐装置,称为自适应无源可变钟摆TMD(APVP-TMD)。当需要调整摆锤时,首先将锁定质量,然后通过加速度传感器和微控制器通过小波变换来确定结构频率。发现这实际上是TMD的最佳频率。然后,步进电机将在微控制器的引导下调整摆的长度。 APVP-TMD的有效性通过离散模型和连续模型进行了验证。对于离散模型,将单自由度一级结构与APVP-TMD耦合作为分析比较的实验,并提出了五自由度一级结构与APVP-TMD耦合。数值模拟。对于连续模型,作为案例研究,由APVP-TMD控制风敏混凝土烟囱。结果都表明,APVP-TMD可以识别最佳频率并有效地进行自身调谐,而经过调谐的TMD的振动控制要好于被干扰的TMD。

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  • 来源
    《Structural Control and Health Monitoring》 |2019年第7期|e2377.1-e2377.21|共21页
  • 作者单位

    Tongji Univ, State Key Lab Disaster Reduct Civil Engn, Shanghai, Peoples R China|Tongji Univ, Dept Disaster Mitigat Struct, Shanghai 200092, Peoples R China;

    Tongji Univ, State Key Lab Disaster Reduct Civil Engn, Shanghai, Peoples R China|Tongji Univ, Dept Disaster Mitigat Struct, Shanghai 200092, Peoples R China;

    Tongji Univ, State Key Lab Disaster Reduct Civil Engn, Shanghai, Peoples R China|Tongji Univ, Dept Disaster Mitigat Struct, Shanghai 200092, Peoples R China;

    Shanghai RB Vibrat Sci & Technol Co Ltd, Civil Engn Dept, Shanghai, Peoples R China;

    Tongji Univ, State Key Lab Disaster Reduct Civil Engn, Shanghai, Peoples R China|Tongji Univ, Dept Disaster Mitigat Struct, Shanghai 200092, Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    adaptive-passive control; continuous model; tuned mass damper; variable pendulum; wavelet transformation; wind-induced vibration;

    机译:自适应被动控制;连续模型;调谐质量阻尼器;变摆;小波变换;风振;

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